Inclusion of Preferential Diffusion in Simulations of Premixed Combustion of Hydrogen/Methane Mixtures with Flamelet Generated Manifolds

被引:52
|
作者
de Swart, Joost A. M. [1 ]
Bastiaans, Rob J. M. [1 ]
van Oijen, Jeroen A. [1 ]
de Goey, L. Philip H. [1 ]
Cant, R. Stewart [2 ]
机构
[1] Eindhoven Univ Technol, Dept Mech Engn, NL-5600 MB Eindhoven, Netherlands
[2] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
关键词
Turbulent combustion; Premixed flames; Preferent diffusion; Hydrogen; AIR FLAMES; NUMERICAL SIMULATIONS; TURBULENT FLAMES; LAMINAR FLAMES; LEWIS NUMBER; STRETCH;
D O I
10.1007/s10494-010-9279-y
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper we study the possibility to account for preferential diffusion effects in lean turbulent premixed flames in numerical predictions with reduced chemistry. We studied the situation when hydrogen is added to methane at levels of 20% and 40% by volume in the fuel, at lean combustion (I center dot = 0.7) with air. The base case of pure methane was used as a reference. In this case preferential diffusion effects are negligible. First the sensitivity of the mass burning rate to flame stretch was investigated, in one dimensional computations with detailed chemistry, to set reference values. Then the framework of the Flamelet Generated Manifolds (FGM) was used to construct an adequate chemical method to take preferential diffusion into account, without the need for using detailed chemistry. To that end a generalization of the method was presented in which five controlling variables are required. For this system, proper transport equations and effective Lewis numbers where derived. In practice not all five variables are necessary to include and as a first step we limited the amount in the numerical tests in this study to two controlling variables. The method was then tested in configurations in which there was an interaction of coherent vortices and turbulence with flames. It was demonstrated that a minimum of two controlling variables is needed to account for the changed mass burning rate as function of stretch and curvature. It was shown that one-dimensional FGM as well as one-step Arrhenius kinetics can not describe this relation.
引用
收藏
页码:473 / 511
页数:39
相关论文
共 50 条
  • [41] DEVELOPMENT OF A MULTI-PHASE FLAMELET GENERATED MANIFOLD FOR SPRAY COMBUSTION SIMULATIONS
    Zhang, Xu
    Yi, Ran
    Chen, C. P.
    PROCEEDINGS OF THE ASME TURBO EXPO: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, VOL 4C, 2020,
  • [42] Combustion and exergy performance optimization investigations on premixed methane/hydrogen mixtures by tuning fuel injection strategies
    Li, Weixuan
    Zeng, Jiangbao
    Bian, Guizhen
    Cai, Tao
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2025, 105 : 80 - 89
  • [43] Effect of hydrogen addition on the OH* and CH* chemiluminescence emissions of premixed combustion of methane-air mixtures
    Reyes, M.
    Tinaut, F., V
    Gimenez, B.
    Pastor, Jose, V
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (42) : 19778 - 19791
  • [44] Experimental study on the combustion characteristics of premixed methane-hydrogen-air mixtures in a spherical closed chamber
    Li, Yanfei
    Zhang, Xin
    Wang, Yue
    FUEL, 2021, 299
  • [45] A new multi-dimensional flamelet generated manifolds approach for approximating partially premixed flame structure
    Wu, Yuxin
    Cao, Changmin
    Ye, Taohong
    Lin, Qizhao
    JOURNAL OF THERMAL SCIENCE AND TECHNOLOGY, 2015, 10 (01):
  • [46] Flame curvature as a determinant of preferential diffusion effects in premixed turbulent combustion
    Karpov, V.P.
    Lipatnikov, A.N.
    Zimont, V.L.
    Progress in Astronautics and Aeronautics, 173
  • [47] HYBRID CATALYTIC COMBUSTION OF METHANE/HYDROGEN MIXTURES
    Cimino, S.
    Allouis, C.
    Mancino, G.
    Nigro, R.
    COMBUSTION SCIENCE AND TECHNOLOGY, 2014, 186 (4-5) : 552 - 562
  • [48] Internal structure of hydrogen-enriched methane-air turbulent premixed flames: Flamelet and non-flamelet behavior
    Mohammadnejad, Sajjad
    Vena, Patrizio
    Yun, Sean
    Kheirkhah, Sina
    COMBUSTION AND FLAME, 2019, 208 : 139 - 157
  • [49] Combustion Modeling Including Heat Loss Using Flamelet Generated Manifolds: A Validation Study in OpenFOAM
    Ottino, G. M.
    Fancello, A.
    Falcone, M.
    Bastiaans, R. J. M.
    de Goey, L. P. H.
    FLOW TURBULENCE AND COMBUSTION, 2016, 96 (03) : 773 - 800
  • [50] Hydrogen peroxide for improving premixed methane-air combustion
    Ting, DSK
    Reader, GT
    ENERGY, 2005, 30 (2-4) : 313 - 322